首页> 外文期刊>European Journal of Medicinal Chemistry: Chimie Therapeutique >Potentially increasing the metabolic stability of drug candidates via computational site of metabolism prediction by CYP2C9: The utility of incorporating protein flexibility via an ensemble of structures.
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Potentially increasing the metabolic stability of drug candidates via computational site of metabolism prediction by CYP2C9: The utility of incorporating protein flexibility via an ensemble of structures.

机译:通过CYP2C9预测新陈代谢的计算位点可能增加候选药物的新陈代谢稳定性:通过结构整体合并蛋白质柔韧性的实用程序。

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摘要

Cytochrome P450 enzymes are responsible for metabolizing many endogenous and xenobiotic molecules encountered by the human body. It has been estimated that 75% of all drugs are metabolized by cytochrome P450 enzymes. Thus, predicting a compound's potential sites of metabolism (SOM) is highly advantageous early in the drug development process. We have combined molecular dynamics, AutoDock Vina docking, the neighboring atom type (NAT) reactivity model, and a solvent-accessible surface-area term to form a reactivity-accessibility model capable of predicting SOM for cytochrome P450 2C9 substrates. To investigate the importance of protein flexibility during the ligand-binding process, the results of SOM prediction using a static protein structure for docking were compared to SOM prediction using multiple protein structures in ensemble docking. The results reported here indicate that ensemble docking increases the number of ligands that can be docked in a bioactive conformation (ensemble: 96%, static: 85%) but only leads to a slight improvement (49% vs. 44%) in predicting an experimentally known SOM in the top-1 position for a ligand library of 75 CYP2C9 substrates. Using ensemble docking, the reactivity-accessibility model accurately predicts SOM in the top-1 ranked position for 49% of the ligand library and considering the top-3 predicted sites increases the prediction success rate to approximately 70% of the ligand library. Further classifying the substrate library according to K(m) values leads to an improvement in SOM prediction for substrates with low K(m) values (57% at top-1). While the current predictive power of the reactivity-accessibility model still leaves significant room for improvement, the results illustrate the usefulness of this method to identify key protein-ligand interactions and guide structural modifications of the ligand to increase its metabolic stability.
机译:细胞色素P450酶负责代谢人体遇到的许多内源性和异源性分子。据估计,所有药物中有75%是通过细胞色素P450酶代谢的。因此,在药物开发过程的早期,预测化合物的潜在代谢位点(SOM)非常有利。我们结合了分子动力学,AutoDock Vina对接,邻近原子类型(NAT)反应性模型和溶剂可及表面积的术语,以形成能够预测细胞色素P450 2C9底物SOM的反应可及性模​​型。为了研究配体结合过程中蛋白质柔韧性的重要性,将使用静态蛋白质结构对接的SOM预测结果与使用整体蛋白质对接的多种蛋白结构的SOM预测结果进行了比较。此处报道的结果表明,整体对接增加了可以以生物活性构象对接的配体数量(整体:96%,静态:85%),但在预测生物活性构象方面仅稍有改善(49%比44%)。实验上已知的SOM在75个CYP2C9底物的配体库的top-1位置。使用集成对接,反应性-可及性模型可以准确预测SOM在49%的配体库中排在前1位,并且考虑到前3个预测位点将预测成功率提高到配体库的约70%。根据K(m)值对基材库进行进一步分类,可改善K(m)值低(顶部1为57%)的基材的SOM预测。虽然反应性-可及性模型的当前预测能力仍留有很大的改进空间,但结果表明该方法可用于鉴定关键的蛋白质-配体相互作用并指导配体的结构修饰以增加其代谢稳定性。

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